z=x 3x y(x,y=0,0)的间断点

(x+y-z)/z=(y+z-x)/x=(z+x-y)/y[x+y]/z-1=[y+z]/x-1=[z+x]/y-1[x+y]/z=[y+z]/x=[z+x]/y设[x+y]/z=[y+z]/x=[z

设(y+z)/x=(x+z)/y=(x+y)/z=k;y+z=kx;x+z=ky;y+z=kx;2(x+y+z)=k(x+y+z);k=2或x+y+z=0;所以,(y+z)(x+z)(x+y)/xyz

我去,这什么题啊

x+y-z=6y+z-x=2z+x-y=0三式相加得x+y+z=8-得2z=2z=1-得2x=6x=3-得2y=8y=4x=3y=4z=1

设(y+z)/x=(z+x)/y=(y+x)/z=k则y+z=kx,z+x=ky,y+x=kz三式相加2(x+y+z)=k(x+y+z)故当x+y+z=0时,k=-1,但xy-z不等于0,可知x+y+

令(y＋z)/x＝(z＋x)/y＝(x＋y)/z＝t∴y＋z＝xt,z＋x＝yt,x＋y＝zt三式相加得：2(x＋y＋z)＝(x＋y＋z)t∴(2－t)(x＋y＋z)＝0∴2－t＝0或x＋y＋z＝0若

∵y+z÷x=Z+X÷y=X+Y÷z容易发现x,y,z位置互换也成立∴式子与x,y,z值无关∴x=y=z∴（X+Y-Z）÷（X+Y+z）=x/3x=1/3明教为您解答,请点击[满意答案];如若您有不满

x+y+z-6=02x+3y-z-12=02x-y-z=0组成方程组再解x=2y=3z=1

X/(Y-Z)=-Y/(Z-X)-Z/(X-Y)所以X/(Y-Z)^2=-Y/(Z-X)(Y-Z)-Z/(X-Y)(Y-Z)=[-Y(X-Y)-Z(Z-X)]/(X-Y)(Y-Z)(Z-X)=(Y+Z

4x-3y-3z=0.1)x-3y+z=0.2)相减：3x=4zx/z=4/31)-2)*4:9y=7zy/z=7/9所以：x/z=4/3,y/z=7/9

令(y+z)/x=(z+x)/y=(x+y)/z=ky+z=kxx+z=kyx+y=kz2(x+y+z)=k(x+y+z)2(x+y+z)=k(x+y+z)(2-k)(x+y+z)=0(x+y+z≠0

4x-3y-3z=0(1)x-3y+z=0(2)(1)-(2):3x-4z=0x=4z/3代入(1):16z/3-3y-3z=0y=7z/9所以：x:z=4:3y:z=7:9

1.z²-z+1/4=(z-1/2)².绝对值、根号、平方数都是非负的,而相加为0.所以都为0.即x=y,2y=z,z=1/2.所以x=y=1/4,z=1/2.2.2002x200

(x+y)/z=(x+z)/y=(z+y)/xx,y,z等价x=y=z(x+y)(x+z)(z+x)/xyz=8

设x+y-z/z=x-y+z/y=y+z-x/x=k有x+y-z=kzx-y+z=kyy+z-x=kx三式相加得x+y+z=k（x+y+z）k=1得x+y=（k+1）zx+z=（k+1）yy+z=（k

将(x+y+z)²展开有(x+y+z)²=x²+y²+z²+2xy+2xz+2yz=x²+y²+z²所以2xy+2xz+

1998（x-y）+1999(y-z)+2000(z-x)=0(1)19982（x-y）+19992(y-z)+20002(z-x)=0(2)(1)展开化简后,得1998x-1998y+1999y-1

X+Y-Z=6.aY+Z-X=2.bZ+X-Y=0.ca,b,c三式相加X+Y+Z=8.dd式-a式2Z=2Z=1d式-b式2X=6X=3d式-C式2Y=8Y=4

括号是什么意思?只有一半

x+3y+10z=0就是x+3y=-10z即2x+6y=-20zA式2x-y-2z=0就是2x-y=2zB式A式-B式得到：（2x+6y）-（2x-y）=-20z-2z即7y=-22z解出y=-22z